PRESS-FIT SPECIAL FORM CAPSULE
20220081169 · 2022-03-17
Inventors
- Jeffrey B. Sharpe (Farragut, TN, US)
- Ryan P. Schultz (Knoxville, TN, US)
- Thomas R. Muth (Knoxville, TN, US)
Cpc classification
B65D51/1661
PERFORMING OPERATIONS; TRANSPORTING
Y02E30/30
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B65D51/16
PERFORMING OPERATIONS; TRANSPORTING
B65B7/2821
PERFORMING OPERATIONS; TRANSPORTING
International classification
B65D39/00
PERFORMING OPERATIONS; TRANSPORTING
B65B7/28
PERFORMING OPERATIONS; TRANSPORTING
B65D51/16
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A capsule for maintaining containment of a substance within a predetermined volume includes a housing having a tubular shape and walls with an inside surface. The housing has at least one open end. A cap is configured to be assembled coaxially to the housing. The cap includes a top and a plug configured to be inside the housing when the cap is assembled to the housing through the open end. An outer surface of the plug is dimensioned to engage an adjacent inside surface of the housing in an interference fit of the cap with the housing. A method for sealing a capsule is also disclosed.
Claims
1. A capsule for maintaining containment of a substance within a predetermined volume, the capsule comprising: a housing having a tubular shape and walls with an inside surface, wherein the housing has at least one open end; and a cap configured to be assembled coaxially to the housing, the cap comprising a top and a plug configured to be inside the housing when the cap is assembled to the housing through the open end, wherein an outer surface of the plug is dimensioned to engage an adjacent inside surface of the housing in an interference fit of the cap with the housing.
2. The capsule of claim 1, wherein the plug comprises a first interference side portion and a first trough.
3. The capsule of claim 2, wherein the plug comprises a first interference protrusion, the first interference protrusion having an outside diameter greater than the outside diameter of the first interference side portion.
4. The capsule of claim 3, wherein the first trough is positioned between the first interference side portion and the first interference protrusion.
5. The capsule of claim 4, further comprising a second interference side portion and a second trough.
6. The capsule of claim 5, wherein the plug comprises a second interference protrusion, the second interference protrusion having an outside diameter greater than the outside diameter of the second interference side portion.
7. The capsule of claim 6, wherein the outside diameter of the second interference side portion is greater than the outside diameter of the first interference side portion, and the outside diameter of the second interference protrusion is greater than the outside diameter of the first interference protrusion.
8. The capsule of claim 7, wherein the housing comprises a plurality of inner interference surfaces comprising a plurality of inside diameters, and the inside diameters decrease from the open end.
9. The capsule of claim 8, wherein the plug comprises a relief, the relief having an outside diameter less than the outside diameter of the first trough and the second trough, the relief being positioned between the first interference side portion and the second interference side portion to permit flexing of the plug.
10. The capsule of claim 1, wherein the cap comprises a flange configured to abut the open end of the housing when the cap is assembled to the housing, the plug extending from the flange.
11. The capsule of claim 1, wherein at least a portion of the plug has a tubular shape with an open interior.
12. The capsule of claim 11, wherein the outer surface of the plug has a relief to enable flexing of the tubular portion of the plug.
13. The capsule of claim 1, wherein the plug is solid.
14. The capsule of claim 1, wherein the housing comprises one of a first material and a second material, and the cap comprises the other of the first material and the second material.
15. The capsule of claim 14, wherein the second material has a higher yield strength than the first material.
16. The capsule of claim 15, wherein the yield strength of the first material is at least 10% below the yield strength of the second material.
17. The capsule of claim 14, wherein the second material has a higher thermal coefficient of thermal expansion than the first material.
18. The capsule of claim 17, wherein the coefficient of thermal expansion of the first material is no more than 20% lower than the coefficient of thermal expansion of the second material.
19. The capsule of claim 14, wherein the coefficient of thermal expansion of the first material is no more than 5% higher or lower than the coefficient of thermal expansion of the second material.
20. The capsule of claim 14, wherein a friction coefficient at an interface between the first and second materials at a first temperature is equal to or greater than the coefficient of friction at a second temperature.
21. The capsule of claim 14, wherein the first material comprises austenitic-stainless steels, and the second material comprises nickel-based super alloys.
22. The capsule of claim 14, wherein the first material is annealed 304 stainless steel, and the second material is annealed Nitronic 60.
23. The capsule of claim 14, wherein the first material comprises Ta, and the second material comprises Ti.
24. The capsule of claim 1, wherein the capsule is a special form capsule.
25. The capsule of claim 1, wherein the housing comprises a groove disposed at its open end, the groove configured to vent, when the cap is assembled to the housing, gas trapped between the housing and the outer surface of the plug.
26. The capsule of claim 1, wherein the capsule maintains a vacuum seal.
27. The capsule of claim 1, wherein the plug has an end with an outer circumferential portion, and the housing comprises a ledge on the inner surface, and wherein the outer circumferential portion is configured to engage the ledge with the plug is assembled into the housing.
28. A method for sealing a capsule, comprising the steps of: providing a housing having a tubular shape and walls with an inside surface, wherein the housing has at least one open end; providing a cap configured to be assembled coaxially to the housing, the cap comprising a top and a plug configured to be inside the housing when the cap is assembled to the housing through the open end, wherein an outer surface of the plug is dimensioned to engage an adjacent inside surface of the housing in an interference fit of the cap with the housing; and, assembling the cap to the housing by positioning the plug through the open end of the housing such that an outer surface of the plug engages an inside surface of the housing in an interference fit.
29. The method of claim 28, wherein the plug comprises a first interference side portion, a first trough, and a first interference protrusion, the first interference protrusion having an outside diameter greater than the outside diameter of the first interference side portion, the method comprising engaging the first interference side portion and the first interference protrusion to corresponding inside surfaces of the housing in interference fits, such that portions of the housing will be moved into the first trough.
30. The method of claim 29, wherein the plug further comprises a second interference side portion, a second trough, and a second interference protrusion, the second interference protrusion having an outside diameter greater than the outside diameter of the second interference side portion, and wherein the outside diameter of the second interference side portion is greater than the outside diameter of the first interference side portion, and the outside diameter of the second interference protrusion is greater than the outside diameter of the first interference protrusion, the method further comprising the step of engaging the second interference side portion and the second interference protrusion to corresponding inside surfaces of the housing in interference fits, such that portions of the housing will be moved into the second trough.
31. The method of claim 28, wherein the cap is engaged to the housing in a process in which one of the cap and the housing is taken to a temperature different to the other of the cap and the housing, the cap is assembled to the housing, and then the assembled cap and housing are taken to the same temperature, whereupon the cap will engage the housing in an interference fit.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0023] There are shown in the drawings embodiments that are presently preferred it being understood that the invention is not limited to the arrangements and instrumentalities shown, wherein:
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DETAILED DESCRIPTION OF THE INVENTION
[0046] A capsule for maintaining containment of a substance within a predetermined volume includes a housing having a tubular shape and walls with an inside surface. The housing has at least one open end. A cap is configured to be assembled coaxially to the housing. The cap includes a top and a plug configured to be inside the housing when the cap is assembled to the housing through the open end. An outer surface of the plug is dimensioned to engage an adjacent inside surface of the housing in an interference fit of the cap with the housing.
[0047] The plug can comprise structure which facilitates the interference fit. Such structure can include interference side portions which have diameters greater than corresponding diameters of the housing. Interference protrusions have diameters that are greater than the diameters of the interference side portions, but with a reduced height. One or more troughs can be provided which have diameters less than the diameters of the interference side portions and the interference protrusions. The troughs accept housing material which may bulge outward from the housing as the result of the strain created by the interference fit. The number, dimensions (diameter, width) and position on the plug of such features can vary.
[0048] There are two separate diameters in the housing that interfere with the cap. In each of these there are two regions of interference. The interference protrusion has a greater interference and is designed to exceed the yield strength of the housing to flow around the interference protrusion and create a better seal. The interference side portion has a lesser interference and is intended primarily to help secure the cap to the housing.
[0049] The cap can create additional sealing with sufficient internal pressure. The plug can include a relief. The plug can have a tubular region with a relief having a reduced diameter that allows for some flexing. The relief has an outside diameter less than the outside diameter of the troughs, the interference side portions and the interference protrusions. The relief can be positioned to permit flexing of the plug when the capsule is pressurized. The flexing enhances the interference fit, and the enhancement can be such that the force required to remove the cap is greater than the force required to press the cap into the housing and create the interference fit. Once the capsule is pressurized internally, and if there is sufficient pressure, this design feature generates additional sealing, or grip, to resist the internal pressure forcing out the cap because the region below the relief flares outward, pushing ever harder against the housing with increasing pressure. This pressure sealing effect works in a metal special form capsule to increase the capacity to hold internal pressure. The benefit provided by this feature is extra resistance to internal pressure above that provided by the interference fits. It is possible with this design feature to have a higher resistance (grip) to internal pressure than the force required to insert the cap initially.
[0050] Once the capsule is pressurized internally, and if there is sufficient pressure, this design generates additional sealing, or grip, to resist the internal pressure forcing out the cap because the region below the relief flares outward, pushing ever harder against the housing with increasing pressure. This pressure sealing effect works in a metal special form capsule to increase the capacity to hold internal pressure. It is possible with this design feature to have a higher resistance (grip) to internal pressure than the force required to insert the cap initially.
[0051] The plug can include a first interference side portion and a first trough. The plug can include a first interference protrusion. The first interference protrusion can have an outside diameter greater than the outside diameter of the first interference side portion. The first trough can be positioned between the first interference side portion and the first interference protrusion. The capsule can include a second interference side portion, a second trough, and a second interference protrusion. The second interference protrusion can have an outside diameter greater than the outside diameter of the second interference side portion. The outside diameter of the second interference side portion can be greater than the outside diameter of the first interference side portion, and the outside diameter of the second interference protrusion can be greater than the outside diameter of the first interference protrusion.
[0052] Each cap has four different surfaces that interfere with the housing. The benefit provided by this redundancy is that there are four points of failure before a leak occurs. The interference protrusions have a higher interference fit and a significantly smaller area than the other two. The interference protrusions are configured to create stresses in the housing that exceed the yield strength of its material but not in the cap. The benefit provided is that the housing material flows around the interference protrusions in the cap to enhance the seal already provided by the interferences.
[0053] The housing can include a plurality of inner interference surfaces comprising a plurality of inside diameters, and which correspond to the interference side portions and interference protrusions of the plug. The dimensions of the corresponding inside diameters of the housing in general can be less than the outside diameters of the corresponding interference side portions and interference protrusions, such that an interference fit is created when the plug is pressed into the housing. The inside diameters can decrease from the open end.
[0054] The cap can take various forms. The interior of the plug can be solid or hollow. At least a portion of the plug can have a tubular shape with an open interior. The top can span the open interior of the plug to provide a sealing cap construction. The cap can include a flange on the cap that is configured to abut the open end of the housing when the cap is assembled to the housing, the plug extending from the flange. The flange can participate in the formation of the seal.
[0055] The housing has a tubular shape with a hollow interior. The cross-section of the tubular shape can take different forms. The cross-section can be tubular, square or rectangular. Other shapes are possible. The dimensions of the housing in height and width can also vary.
[0056] The housing can be made of one of a first material and a second material. The cap can be made of the other of the first material and the second material. The second material can have a higher yield strength than the first material. The yield strength of the first material can be at least 10% below the yield strength of the second material. In one embodiment the cap is comprised of the second material and has a higher yield strength than does the material making up the housing.
[0057] One of the first material and the second material can have a higher thermal coefficient of thermal expansion than the other material. The coefficient of thermal expansion for the two materials must not differ enough, throughout the entire operating temperature range, to significantly reduce the designed interference of the sealing surfaces. For instance, in some implementations, the coefficient of thermal expansion of the first material can be no more than 20% lower than the coefficient of thermal expansion of the second material. The coefficient of thermal expansion of the first material can be no more than 5% higher or lower than the coefficient of thermal expansion of the second material.
[0058] The materials selected for the cap and housing are not only based on their yield strengths to accommodate the function of the interference protrusions, but consideration is also given to ensure that the coefficient of friction between the two materials increases (preferred) or at least does not diminish with increasing temperature. A friction coefficient at an interface between the first and second materials at a first temperature can be equal to or greater than the coefficient of friction at a second temperature. The benefit provided is that the grip of the seal joint is uncompromised due to increased temperature.
[0059] One of the first material and second material can include austenitic-stainless steels, and the other of the first material and the second material can include nickel-based super alloys. The first material can be annealed 304 stainless steel, and the second material can be annealed Nitronic 60. The first material can be Ta, and the second material can be Ti.
[0060] The capsule can be a special form capsule. The housing can include one or more laterally directed grooves disposed at its open end. The grooves are configured to vent, when the cap is assembled to the housing, gas trapped between the housing and the outer surface of the plug.
[0061] Because the capsule can contain magnitudes of pressure which far exceed that of vacuum, and because the capsule seal has a very low helium leak rate, the capsule can provide an effective vacuum seal throughout its entire operating range.
[0062] The plug can have an end with an outer circumferential portion, and the housing can include a ledge on the inner surface. The outer circumferential portion is configured to engage the ledge with the plug is assembled into the housing.
[0063] A method for sealing a capsule can include the step of providing a housing having a tubular shape and walls with an inside surface, wherein the housing has at least one open end. A cap configured to be assembled coaxially to the housing is provided. The cap includes a top and a plug configured to be inside the housing when the cap is assembled to the housing through the open end. An outer surface of the plug is dimensioned to engage an adjacent inside surface of the housing in an interference fit of the cap with the housing. The cap is assembled to the housing by positioning the plug through the open end of the housing such that an outer surface of the plug engages an inside surface of the housing in an interference fit.
[0064] The seal is accomplished by inserting the cap into the housing. This can be done by using a press to force the cap into the housing (press-fit) or by creating a sufficient temperature difference between the cap and housing to allow for insertion of the cap into the housing without a press (shrink-fit). This can also be accomplished by some combination of press and shrink fits, as long as the designed interferences are achieved.
[0065] The plug can include a first interference side portion, a first trough, and a first interference protrusion, the first interference protrusion having an outside diameter greater than the outside diameter of the first interference side portion. The method includes the step of engaging the first interference side portion and the first interference protrusion to corresponding inside surfaces of the housing in interference fits, such that portions of the housing will be moved into the first trough. The method can also include providing a plug which further includes a second interference side portion, a second trough, and a second interference protrusion. The second interference protrusion has an outside diameter greater than the outside diameter of the second interference side portion, and wherein the outside diameter of the second interference side portion is greater than the outside diameter of the first interference side portion, and the outside diameter of the second interference protrusion is greater than the outside diameter of the first interference protrusion. The method includes the step of engaging the second interference side portion and the second interference protrusion to corresponding inside surfaces of the housing in interference fits, such that portions of the housing will be moved into the second trough.
[0066] The interference fits and the lower region of the cap also provide superior resistance to internally-generated pressure in the capsule. Further, pressing capsules together requires less equipment and training than welding them. The interference-fit capsule sealing does not weaken with increasing internal pressure, but rather it fails suddenly, and the cap moves relative to the housing to give a visual indication of failure.
[0067] Additionally, the housing has vent grooves to eliminate false positives during leak testing. The vent grooves can be at the top of the housing. These vent any small volume of gas that gets trapped above the interferences between the housing and cap during insertion. The benefit provided is the possibility of false positives during leak testing is eliminated.
[0068] Testing was performed which included all three of the relevant DOT regulatory tests (impact, percussive and heat) for each capsule. The helium leak rate for capsules was <1E.sup.−8 Atm-cc/s, which is substantially less than the requirement of <2E.sup.−8 Atm-cc/s. Hydrostatic testing resulted in excellent retention of internal pressure, substantially exceeding predictions. This is an indication that the self-energizing pressure seal works as intended. Initially, the capsule is sealed by means of several interferences between the cap and housing. Interference fits (press or shrink) enable achievement of low rates of leakage (<1E.sup.−4 Atm-cc/s) with interference fits in special form capsules. In four tested capsules, the leak rates were all <2E.sup.−8 Atm-cc/s, even after all three DOT regulatory tests (impact, percussive and heat) were performed on each capsule. It should be noted that air can be expected to leak at a lower rate than helium.
[0069] Sealing the capsule requires that the cap be pressed into the housing with a press or else assembled as a shrink fit. The press can be a standardized press or one that is specially manufactured for this purpose. Opening the capsule is expected to occur by sawing through the housing at the indicator groove. The term “special form capsule” (SFC) dictates that opening the capsule must have obvious changes (damage) to the capsule afterward.
[0070] There is shown in
[0071] The plug 108 can also include a second interference side portion 120. The second interference side portion 120 has an outside diameter that is greater than the outside diameter of the first interference side portion 109. The plug 108 can also include a second trough 122 adjacent the second interference side portion 120. The second trough 122 has an outside diameter that is less than the outside diameter of the second interference side portion 120. A second interference protrusion 124 can also be provided. The second interference protrusion 124 as an outside diameter that is greater than the outside diameter of the second interference side portion 120, and also greater than the outside diameter of the first interference protrusion 114.
[0072] The cap 102 can further include a relief 126. The relief 126 permits the flexing of the plug 108 under internal pressure within the capsule to further engage the housing in the interference fit. The relief 126 permits the first interference side portion 109 below the relief 126 to flex laterally outward.
[0073] The housing 104 is generally tubular and includes tubular side wall 130 and base 132 defining an open interior 133 with a first interference wall surface 136. Housing 104 has an open end 134. The cap 102 can further comprise a flange 111 for abutting and engaging the open end 134 of the housing 104. Adjacent the open end 134, the first interference wall surface 136 is dimensioned to engage portions of the plug 108 in an interference fit. The interference fit is shown in various stages in
[0074] As shown in
[0075] As shown in
[0076] As the cap 102 is pressed further into the housing 104, the first interference protrusion 114 will engage the first interference wall surface 136 of the housing wall 130 (
[0077] As the cap 102 is pressed still further into the housing 104, the second interference protrusion 124 will engage the bevel 142 and ultimately will be pressed into the second interference wall surface 138 as shown in
[0078] The number of interference side portions and corresponding interference wall surfaces can vary. Also, although the second interference wall surface 138 is shown as having a greater diameter than the first interference wall surface 136 of the housing wall 130, it is possible to have only a single interference wall surface diameter that engages with multiple interference side portions and interference protrusions.
[0079] There is shown in
[0080] As shown in
[0081] The seal created by the invention will be very tight and it will be difficult to remove the cap 102 from the housing 104. A groove or depression 195 can be provided to facilitate the cutting open of the sealed capsule 100. A special form capsule should show evidence of tampering or opening. The breaking of the capsule at the groove 195 will be evidence of such tampering.
[0082] During assembly, gases will sometimes be trapped between the cap 102 and the housing 104 outside the intended sealing surface such as in the space above the second interference protrusion 124. Vents 197 (
[0083] Other constructions are possible which can take advantage of the coefficient of thermal expansion. As shown in
[0084] In this embodiment, an outside surface 214 of the cap 202 is spaced from the recessed inside wall surface 216 of the housing 204. The cap 202 is shown extending above the housing 204, however, the cap 202 can also be flush with the top of the housing 204.
[0085] The cap 202 and the housing 204 are made of different materials with different coefficients of thermal expansion. In the embodiment shown in
[0086] It is also possible to utilize the coefficient of thermal expansion of the materials making the cap 202 and the housing 204 to make an interference fit even where the coefficients of thermal expansion are the same, in a form of shrink fit process. In such a process, only one of the cap or the housing is taken to a temperature different from that of the other of the cap or the housing. The cap and the housing are then assembled into a capsule, and both the cap and the housing are allowed to normalize to the same temperature, for example room temperature. At this temperature, the cap will engage the housing in an interference fit.
[0087] The invention as shown in the drawings and described in detail herein disclose arrangements of elements of particular construction and configuration for illustrating preferred embodiments of structure and method of operation of the present invention. It is to be understood however, that elements of different construction and configuration and other arrangements thereof, other than those illustrated and described may be employed in accordance with the spirit of the invention, and such changes, alternations and modifications as would occur to those skilled in the art are considered to be within the scope of this invention as broadly defined in the appended claims. In addition, it is to be understood that the phraseology and terminology employed herein are for the purpose of description and should not be regarded as limiting.